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Experimental investigation of the effect of inclination angle on convection-driven melting of phase change material in a rectangular enclosure

机译:倾角对矩形外壳中相变材料对流驱动熔化影响的实验研究

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This paper investigates the dynamic thermal behavior of phase change material (PCM) melting in a rectangular enclosure at various inclination angles. Lauric acid as a PCM with high Prandtl number (Pr≈ 100) is used. The enclosure is heated isothermally from one side while the other walls are thermally insulated. Experiments were performed with hot wall temperatures of 55,60 and 70 ℃ (3.6 × 10~8 ≤ Ra ≤ 8.3 × 10~8) for different inclination angles of 0°, 45° and 90°. Image processing of melt photographs along with recorded temperatures were used to calculate the melt fractions, Nusselt numbers and the local interfa-cial heat transfer rates at the solid-liquid interface. Qualitative time-dependent natural convection flow structures were deduced indirectly from the instantaneous shape of the solid-liquid interface which were confirmed by quantitative data from temperature measurements. The results reveal that the enclosure inclination has a significant effect on the formation of natural convection currents and consequently on the heat transfer rate and melting time of the PCM. As the inclination angle is decreased from 90° to 0°, the convection currents in the enclosure increases and chaotic flow structures appear. When melting commences in the horizontally inclined enclosure, the solid-liquid interface line becomes wavy which implies the formation of Benard convection cells in the liquid PCM. For the same hot wall temperatures, a decrease in inclination angle leads to a considerable enhancement in energy transport from the hot wall of the enclosure to the PCM. It is found that the heat transfer enhancement ratio for the horizontal enclosure is more than two times higher than that of the vertical enclosure.
机译:本文研究了矩形外壳中不同倾角熔化的相变材料(PCM)的动态热行为。使用月桂酸作为具有高普朗特数(Pr≈100)的PCM。从一侧对外壳进行等温加热,而另一侧壁进行隔热。在0°,45°和90°的不同倾斜角下,热壁温度分别为5560和70℃(3.6×10〜8≤Ra≤8.3×10〜8)。熔体照片的图像处理以及记录的温度用于计算熔体分数,Nusselt数和固液界面处的局部界面传热速率。由固-液界面的瞬时形状间接推导定性的与时间有关的自然对流流动结构,该结构通过温度测量的定量数据得到证实。结果表明,外壳的倾斜度对自然对流的形成有很大影响,因此对PCM的传热速率和熔化时间也有很大的影响。当倾斜角度从90°减小到0°时,外壳中的对流增加,并且出现混乱的流动结构。当在水平倾斜的外壳中开始熔化时,固液界面线会呈波浪形,这意味着在液体PCM中会形成Benard对流单元。对于相同的热壁温度,倾斜角度的减小导致从外壳的热壁到PCM的能量传输显着增强。发现水平外壳的传热增强比是垂直外壳的传热增强比的两倍以上。

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